Compression Property, Deformation Behavior, and Fracture Mechanism of Additive-Manufactured Ti-6Al-4V Cellular Solid with a New Cuboctahedron Structure

被引:12
作者
Wu, Ming-Wei [1 ]
Chen, Jhewn-Kuang [1 ]
Chiang, Po-Hsing [1 ]
Chang, Po-Min [1 ]
Tsai, Mo-Kai [1 ]
机构
[1] Natl Taipei Univ Technol, Dept Mat & Mineral Resources Engn, 1,Sec 3,Zhong Xiao E Rd, Taipei 10608, Taiwan
来源
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE | 2020年 / 51卷 / 12期
关键词
LATTICE STRUCTURES; FATIGUE BEHAVIOR; HEAT-TREATMENT; FAILURE MODES; LASER; MICROSTRUCTURE; POROSITY; ALLOY; BIOMATERIALS; ORIENTATION;
D O I
10.1007/s11661-020-06013-7
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Laser powder bed fusion is a major additive manufacturing process for manufacturing cellular metallic materials. The main objective of this study was to clarify the influences of microstructure on the compressive deformation behavior and fracture mechanism of selective laser melted (SLM) cellular Ti-6Al-4V alloy with a new cuboctahedron structure usingin-situobservation in combination with the digital image correlation technique. The results indicated that the compressive stress-strain curve of the SLM specimen was serrated in the plateau regime due to the brittle struts with alpha '-martensite. Nevertheless, hot isostatic pressing (HIP) at 1000 degrees C/150 MPa transformed the microstructure from brittle alpha '-martensite to ductile alpha + beta dual phases. In the HIP specimen, the struts plastically collapsed layer-by-layer with increasing compressive strain and were then extruded into the surrounding pores, resulting in a smooth stress-strain curve. Furthermore, the HIP treatment also improved the energy absorption at 50 pct strain from 68.1 to 77.4 MJ/m(3)and maintained the uniformity in the width of the cellular material. These effects are advantageous to energy absorbing applications and alleviating the risk of biomedical implants.
引用
收藏
页码:6517 / 6527
页数:11
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